Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Arnaud Huignard is active.

Publication


Featured researches published by Arnaud Huignard.


Journal of Materials Chemistry | 2011

Efficient oxide phosphors for light upconversion; green emission from Yb3+ and Ho3+ co-doped Ln2BaZnO5 (Ln = Y, Gd)

Isabelle Etchart; Ignacio Hernández; Arnaud Huignard; Mathieu Berard; W. P. Gillin; Richard J. Curry; Anthony K. Cheetham

The optical properties of Yb3+ and Ho3+ co-doped Y2BaZnO5, synthesized by solid-state reactions, are investigated in detail. Under 977 nm excitation (∼25 × 10−3 W mm−2), bright green upconversion emission is observed. Concentration dependence studies at room temperature show that relatively high infrared to visible upconversion efficiencies are obtained with values up to ∼2.6%. The results of power dependence studies and temperature-dependent lifetime measurements allow us to determine the dominant upconversion mechanisms in Yb3+:Ho3+ co-doped Y2BaZnO5oxides. The materials presented in this article constitute new and efficient upconversion phosphors which may find utility in a variety of applications.


Journal of Materials Chemistry | 2010

Oxide phosphors for efficient light upconversion: Yb3+ and Er3+ co-doped Ln2BaZnO5 (Ln = Y, Gd)

Isabelle Etchart; Arnaud Huignard; Mathieu Berard; Muhammad N. Nordin; Ignacio Hernández; Richard J. Curry; W. P. Gillin; Anthony K. Cheetham

The optical properties of Yb3+ and Er3+ co-doped Ln2BaZnO5 (Ln = Y or Gd), synthesized by solid-state reaction, are investigated in detail. Two main emission bands centered around 548 nm (green) and 673 nm (red) are observed under 977 nm laser excitation via an upconversion process. Studies of the behavior as a function of dopant concentration are described and relatively high infrared to visible upconversion efficiencies of ∼5% are obtained at room temperature. Under modulated 977 nm excitation and for fixed dopant concentrations, the upconverted emission chromaticity can be varied by changing the excitation duration. The results of power dependence studies and lifetime measurements are presented. This detailed study of the upconversion processes allows us to identify the dominant upconversion mechanisms in Yb3+,Er3+ co-doped Ln2BaZnO5 oxides.


Chemical Communications | 2011

Efficient white light emission by upconversion in Yb3+-, Er3+- and Tm3+-doped Y2BaZnO5

Isabelle Etchart; Mathieu Berard; Marine Laroche; Arnaud Huignard; Ignacio Hernández; W. P. Gillin; Richard J. Curry; Anthony K. Cheetham

We report efficient white upconversion luminescence in Yb(3+)-, Er(3+)- and Tm(3+)-doped monophasic and biphasic Y(2)BaZnO(5) phosphors under 977 nm near-infrared excitation and at low excitation power densities (down to ∼25 mW mm(-2)).


Journal of Applied Physics | 2011

Oxide phosphors for light upconversion; Yb3+ and Tm3+ co-doped Y2BaZnO5

Isabelle Etchart; Ignacio Hernández; Arnaud Huignard; Mathieu Berard; Marine Laroche; W. P. Gillin; Richard J. Curry; Anthony K. Cheetham

The optical properties of Yb3+ and Tm3+ co-doped Y2BaZnO5, synthesized by solid-state reaction, are investigated in detail. Three main emission bands centered around 479 nm (blue), 654 nm (red), and 796 nm (near-infrared) are observed under near-infrared laser excitation via an upconversion process. Detailed studies of the upconversion properties as a function of dopant concentrations are described and upconversion efficiencies quantified precisely. Maximum efficiencies of ∼ 1.53% in the 730-870 nm near-infrared emission range and of ∼ 0.09% in the 420-530 nm blue range are obtained. The results of power dependence studies and concentration dependent lifetime measurements are presented. This in-depth spectroscopic study allows us, for the first time, to identify the dominant processes involved in the upconversion mechanism of Yb3+, Tm3+ co-doped Y2BaZnO5 oxides.


Langmuir | 2010

Plasmon-induced modification of fluorescent thin film emission nearby gold nanoparticle monolayers.

Jongwook Kim; Géraldine Dantelle; Amélie Revaux; Mathieu Berard; Arnaud Huignard; Thierry Gacoin; Jean-Pierre Boilot

When placed in the vicinity of metal nanoparticles, fluorophore molecules can have their fluorescence intensity enhanced. In order to engineer highly fluorescent thin films, surface plasmon enhancement fluorescence was studied on macroscopic systems composed of gold nanoparticles deposited on a substrate and coated by a dye-containing polymer film. We developed a simple method based on surface silanization to get a good dispersion of up to 100 nm gold nanoparticles on a substrate. While controlling the nanoparticle size and the fluorophore concentration, we measured the fluorescence enhancement factors of systems doped with dyes possessing different quantum yields. We evidenced experimentally that a fluorescence enhancement factor of 4 could be reached for a low-quantum yield dye and that the fluorophore quantum yield affects significantly the enhancement factor. We then discussed how our experimental results agree with previously developed models.


Chemistry of Materials | 2000

Synthesis and Luminescence Properties of Colloidal YVO4:Eu Phosphors

Arnaud Huignard; Thierry Gacoin; Jean-Pierre Boilot


Journal of Physical Chemistry B | 2003

Emission Processes in YVO4:Eu Nanoparticles

Arnaud Huignard; V. Buissette; Anne-Christine Franville; and Thierry Gacoin; Jean-Pierre Boilot


Chemistry of Materials | 2002

Synthesis and characterizations of YVO4:Eu colloids

Arnaud Huignard; V. Buissette; G. Laurent; Thierry Gacoin; J.-P. Boilot


Nano Letters | 2004

Functionalized fluorescent oxide nanoparticles: Artificial toxins for sodium channel targeting and imaging at the single-molecule level

Emmanuel Beaurepaire; V. Buissette; Martin-Pierre Sauviat; Domitille Giaume; Khalid Lahlil; Antoine Mercuri; Didier Casanova; Arnaud Huignard; Jean-Louis Martin; Thierry Gacoin; Jean-Pierre Boilot; Antigoni Alexandrou


Archive | 2007

Porous layer, its manufacturing process and its applications

Arnaud Huignard; Nathalie Rohaut; Sophie Besson

Collaboration


Dive into the Arnaud Huignard's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge